Bounding the average gate fidelity of composite channels using the unitarity

Abstract

There is currently a significant need for robust and efficient methods for characterizing quantum devices. While there has been significant progress in this direction, there remains a crucial need to precisely determine the strength and type of errors on individual gate operations, in order to assess and improve control as well as reliably bound the total error in a quantum circuit given some partial information about the errors on the components. In this work, we first provide an optimal bound on the total fidelity of a circuit in terms of component fidelities, which can be efficiently experimentally estimated via randomized benchmarking (RB). We then derive a tighter bound that applies under additional information about the coherence of the error, namely, the unitarity, which can also be estimated via a related experimental protocol. This improved bound smoothly interpolates between the worst-case quadratic and best-case linear scaling for composite error channels. As an application we show how our analysis substantially improves the achievable precision on estimates of the infidelities of individual gates under interleaved RB, enabling greater precision for current experimental methods to assess and tune-up control over quantum gate operations.

Document Details

Document Type
Pub Defense Publication
Publication Date
May 01, 2019
Source ID
10.1088/1367-2630/ab1800

Entities

People

  • Arnaud Carignan-Dugas
  • Joel J Wallman
  • Joseph Emerson

Organizations

  • Army Research Office
  • Canada First Research Excellence Fund
  • Canadian Institute for Advanced Research
  • Natural Sciences and Engineering Research Council

Tags

Readers

  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Radio communications and signal processing.
  • Statistical inference.

Technology Areas

  • Quantum Computing